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Coherent control of quantum-well excitons in a resonant semiconductor microcavity for high-speed all-optical switching

机译:谐振半导体微腔中量子阱激子的相干控制,用于高速全光开关

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Coherent control of excitons in quantum wells embedded in a resonant planar semiconductor microcavity versus in quantum wells without the cavity at high repetition rates is investigated theoretically to determine the practical constraints for application in high bit-rate optical switching. It is shown that /spl pi/-shifted pulse pairs are optimal to coherently populate and depopulate the QW on the 100-fs timescale. For the cavity-free case, the small optical nonlinearity will require devices incorporating /spl sim/100 quantum wells; the resonant enhancement of the confined mode for the case of the cavity leads to an effective increase in the optical nonlinearity and thus a reduction of the required number of quantum wells to /spl sim/10. In addition, switch architectures that avoid interferometers, and thus will have superior temperature and mechanical stability, based on the microcavity are proposed. We believe that although room-temperature operation of a 100-Gb/s switch based on this principle may be difficult, operation at liquid-nitrogen temperature should be feasible.
机译:从理论上研究了在高重复率下嵌入在谐振平面半导体微腔中的量子阱中激子的相干控制与没有腔的量子阱中高激子的相干控制,以确定对高比特率光开关应用的实际限制。结果表明,/ spl pi /移位脉冲对在100-fs时标上相干地填充和减少QW是最佳的。对于无腔的情况,较小的光学非线性将需要包含/ spl sim / 100量子阱的设备;对于腔的情况,限制模式的共振增强导致光学非线性的有效增加,从而将所需的量子阱数量减少到/ spl sim / 10。另外,基于微腔,提出了避免干涉仪并因此具有优异的温度和机械稳定性的开关架构。我们认为,尽管基于此原理在100 Gb / s交换机的室温下运行可能很困难,但在液氮温度下运行应该是可行的。

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